Bivalve molluscs, such as oysters, are threatened by shifts in seawater chemistry resulting from climate change. However, a few species and populations within a species stand out for their capacity to cope with the impacts of climate change‐associated stressors. Understanding the intracellular basis of such differential responses can contribute to the development of strategies to minimise the pervasive effects of a changing ocean on marine organisms. In this study, we explored the intracellular responses to ocean acidification in two genetically distinct populations of Sydney rock oysters (Saccostrea glomerata). Selectively bred and wild type oysters exhibited mark...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Oyster microbiomes are integral to healthy function and can be altered by climate change conditions....
Marine organisms need to adapt in order to cope with the adverse effects of ocean acidification and ...
Bivalve molluscs, such as oysters, are threatened by shifts in seawater chemistry resulti...
Empirical thesis.Includes bibliographical references.Chapter 1. General introduction -- Chapter 2. T...
Ocean acidification (OA), caused by the oceanic uptake of anthropogenic CO2, is predicted to negativ...
Abstract Background This study characterises the molecular processes altered by both elevated CO2 an...
Some populations of marine organisms appear to have inherent tolerance or the capacity for acclimati...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Environmental hypercapnia in shallow coastal marine ecosystems can be exacerbated by increasing leve...
Acidifying oceans are predicted to fundamentally alter marine ecosystems. Over the next century, acu...
Uptake of increasing anthropogenic CO2 emissions by ocean surface waters is causing an increase of s...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Oyster microbiomes are integral to healthy function and can be altered by climate change conditions....
This study tested the proteomic responses of three spatially distinct Sydney rock oyster populations...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Oyster microbiomes are integral to healthy function and can be altered by climate change conditions....
Marine organisms need to adapt in order to cope with the adverse effects of ocean acidification and ...
Bivalve molluscs, such as oysters, are threatened by shifts in seawater chemistry resulti...
Empirical thesis.Includes bibliographical references.Chapter 1. General introduction -- Chapter 2. T...
Ocean acidification (OA), caused by the oceanic uptake of anthropogenic CO2, is predicted to negativ...
Abstract Background This study characterises the molecular processes altered by both elevated CO2 an...
Some populations of marine organisms appear to have inherent tolerance or the capacity for acclimati...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Environmental hypercapnia in shallow coastal marine ecosystems can be exacerbated by increasing leve...
Acidifying oceans are predicted to fundamentally alter marine ecosystems. Over the next century, acu...
Uptake of increasing anthropogenic CO2 emissions by ocean surface waters is causing an increase of s...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Oyster microbiomes are integral to healthy function and can be altered by climate change conditions....
This study tested the proteomic responses of three spatially distinct Sydney rock oyster populations...
Previous work suggests that larvae from Sydney rock oysters that have been selectively bred for fast...
Oyster microbiomes are integral to healthy function and can be altered by climate change conditions....
Marine organisms need to adapt in order to cope with the adverse effects of ocean acidification and ...